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通过化学还原法一锅合成纳米结构的Ni@Ni(OH)和Co掺杂的Ni@Ni(OH)用于超级电容器应用

One-Pot Synthesis of Nanostructured Ni@Ni(OH) and Co-Doped Ni@Ni(OH) via Chemical Reduction Method for Supercapacitor Applications.

作者信息

Eom Seungyong, Jung Jinjoo, Kim Do Hyung

机构信息

Nano Applied Physics Laboratory, Department of Physics, Kyungpook National University, Daegu 702-701, Republic of Korea.

出版信息

Materials (Basel). 2022 Dec 30;16(1):380. doi: 10.3390/ma16010380.

Abstract

Crystalline Ni@Ni(OH) (cNNH) and Co-doped cNNH were obtained via a simple one-pot hydrothermal synthesis using a modified chemical reduction method. The effect of each reagent on the synthesis of the nanostructures was investigated concerning the presence or absence of each reagent. The detailed morphology shows that both nanostructures consist of a Ni core and Ni(OH) shell layer (~5 nm). Co-doping influences the morphology and suppresses the particle agglomeration of cNNH. Co-doped cNNH showed a specific capacitance of 1238 F g at 1 A g and a capacitance retention of 76%, which are significantly higher than those of cNNH. The enhanced performance of the co-doped cNNH is attributed to the reduced path length of the electrons caused by the decrease in the size of the nanostructure and the increased conductivity due to Co ions substituting Ni ions. The reported synthesis method and electrochemical behaviors of cNNH and Co-doped cNNH affirm their potential as electrochemically active materials for supercapacitor applications.

摘要

通过使用改进的化学还原法的简单一锅水热合成法获得了结晶态的Ni@Ni(OH)(cNNH)和Co掺杂的cNNH。针对每种试剂的存在与否,研究了每种试剂对纳米结构合成的影响。详细的形态表明,两种纳米结构均由Ni核和Ni(OH)壳层(约5纳米)组成。Co掺杂影响形态并抑制cNNH的颗粒团聚。Co掺杂的cNNH在1 A g时显示出1238 F g的比电容和76%的电容保持率,这显著高于cNNH。Co掺杂的cNNH性能增强归因于纳米结构尺寸减小导致电子路径长度缩短以及Co离子取代Ni离子导致电导率增加。所报道的cNNH和Co掺杂的cNNH的合成方法及电化学行为证实了它们作为超级电容器应用的电化学活性材料的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56ea/9822482/6471effcf84b/materials-16-00380-g001.jpg

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